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Given the current node, how can I find its previous node in a Singly Linked List. Thanks. Logic will do , code is appreciated. We all know given a root node one can do a sequential traverse , I want to know if there is a smarter way that avoids sequential access overhead. (assume there is no access to root node) Thanks.

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Code would be appreciated here also to answer the question. –  ldav1s Aug 25 '11 at 23:52
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6 Answers

up vote 3 down vote accepted

You can't.

Singly-linked lists by definition only link each node to its successor, not predecessor. There is no information about the predecessor; not even information about whether it exists at all (your node could be the head of the list).

You could use a doubly-linked list. You could try to rearrange everything so you have the predecessor passed in as a parameter in the first place.

You could scan the entire heap looking for a record that looks like a predecessor node with a pointer to your node. (Not a serious suggestion.)

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Why are you saying "you can't"?? What's wrong with iterating from the start of the list searching for a node that has 'next' equal to 'current'. If no match is found return NULL or something similar?? –  Darren Engwirda Aug 26 '11 at 0:01
    
"You can't" means "it is not mathematically possible". There is a missing piece of information that can not be recreated. The question (I think) makes it obvious that they don't even have access to the head of the list; so there's no known starting point from which to iterate the way you suggest. –  hemflit Aug 26 '11 at 0:02
    
@hemflit , yes there is no root node. –  David Prun Aug 26 '11 at 0:05
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To follow up on that, if you do have access to the head of the list, then you are able to follow my suggestion to "rearrange everything so you have the predecessor passed in". –  hemflit Aug 26 '11 at 0:05
    
Right, then, I'm sorry helloMaga, but the answer to your question is that that can't be done. –  hemflit Aug 26 '11 at 0:07
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Walk through the list from the beginning until you meet a node whose next link points you your current node.

But if you need to do this, perhaps you oughtn't be using a singly linked list in the first place.

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Assuming that you're talking about a forward singly linked list (each node only has a pointer to 'next' etc) you will have to iterate from the start of the list until you find the node that has 'next' equal to your current node. Obviously, this is a slow O(n) operation.

Hope this helps.

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Your only option for a singly-linked list is a linear search, something like below (Python-like pseudo code):

find_previous_node(list, node):
   current_node = list.first
   while(current_node.next != null):
       if(current_node.next == node):
          return current_node
       else:
          current_node = current_node.next
   return null
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Use a nodeAt() method and pass the head,size and the index of the current node.

 public static Node nodeAt(Node head,int index){
    Node n=head;
    for(int i=0;i<index;i++,n=n.next)
      ;
    return n;
  }

where n returns the node of the predecessor.

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assuming you are using forward singly linked list your code should look like

while(node)
{
      previous = node
      node = node.next
      // Do what ever you want to do with the nodes
}
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How does this code stop when the 'current' node is found?? –  Darren Engwirda Aug 25 '11 at 23:58
    
if(node.content == whatINeed) { doSomething(previous.content); }. –  arunmur Aug 26 '11 at 7:13
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